EP1038314A1 - Substrate transfer system for semiconductor processing equipment - Google Patents
Substrate transfer system for semiconductor processing equipmentInfo
- Publication number
- EP1038314A1 EP1038314A1 EP98960377A EP98960377A EP1038314A1 EP 1038314 A1 EP1038314 A1 EP 1038314A1 EP 98960377 A EP98960377 A EP 98960377A EP 98960377 A EP98960377 A EP 98960377A EP 1038314 A1 EP1038314 A1 EP 1038314A1
- Authority
- EP
- European Patent Office
- Prior art keywords
- substrate
- susceptor
- section
- support
- end effector
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Withdrawn
Links
Classifications
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L21/00—Processes or apparatus adapted for the manufacture or treatment of semiconductor or solid state devices or of parts thereof
- H01L21/67—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere
- H01L21/68—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for positioning, orientation or alignment
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L21/00—Processes or apparatus adapted for the manufacture or treatment of semiconductor or solid state devices or of parts thereof
- H01L21/67—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere
- H01L21/683—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping
- H01L21/687—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping using mechanical means, e.g. chucks, clamps or pinches
- H01L21/68714—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping using mechanical means, e.g. chucks, clamps or pinches the wafers being placed on a susceptor, stage or support
- H01L21/68785—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping using mechanical means, e.g. chucks, clamps or pinches the wafers being placed on a susceptor, stage or support characterised by the mechanical construction of the susceptor, stage or support
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L21/00—Processes or apparatus adapted for the manufacture or treatment of semiconductor or solid state devices or of parts thereof
- H01L21/67—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere
- H01L21/683—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping
- H01L21/687—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping using mechanical means, e.g. chucks, clamps or pinches
- H01L21/68707—Apparatus specially adapted for handling semiconductor or electric solid state devices during manufacture or treatment thereof; Apparatus specially adapted for handling wafers during manufacture or treatment of semiconductor or electric solid state devices or components ; Apparatus not specifically provided for elsewhere for supporting or gripping using mechanical means, e.g. chucks, clamps or pinches the wafers being placed on a robot blade, or gripped by a gripper for conveyance
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S294/00—Handling: hand and hoist-line implements
- Y10S294/902—Gripping element
-
- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10—TECHNICAL SUBJECTS COVERED BY FORMER USPC
- Y10S—TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y10S414/00—Material or article handling
- Y10S414/135—Associated with semiconductor wafer handling
- Y10S414/141—Associated with semiconductor wafer handling includes means for gripping wafer
Definitions
- This invention relates to thermal reactors used in semiconductor wafer processing operations and, more particularly to a system for loading and unloading a wafer.
- Semiconductor substrate, or wafers are typically processed by chemical vapor deposition.
- Components included in semiconductor processing operations include a reaction chamber which is heated to a desired temperature and is configured to facilitate the controlled flow of a reactant gas, which contains the material to be deposited by thermal reaction onto a wafer.
- a base which is commonly referred to in the art as a "susceptor,” is usually provided in the reaction chamber for supporting the wafer during chemical vapor deposition.
- a robotic arm has been employed to place a wafer on a susceptor and subsequently, after processing, to remove it from the reactor.
- Susceptors have evolved considerably during the last ten years, from simple flat platforms, which contributed nothing beyond their physical support to the processing operation, to susceptors provided with mechanisms for rotating the wafer during processing and sophisticated systems for sensing and responding to local temperature differences at the susceptor surface. Further, means for displacing the wafer from the susceptor after processing have been provided to assist in removal of the wafer by the robotic arm. Such innovations in susceptor design have contributed significantly to improved semiconductor quality and uniformity.
- the means for facilitating wafer displacement from the susceptor surface and transfer to the robotic arm for removal from the reactor, remains problematic in automated semiconductor processing systems.
- One approach to wafer transfer operations known in the art, involves using wafer support pins, which move vertically through holes in the susceptor to effect displacement of the wafer from the susceptor surface after processing.
- wafer support pins has several important shortcomings. Abrasion of the pins within the holes in the susceptor is caused both by the rotation of the susceptor as well as the different rates of thermal expansion exhibited by the pins and the susceptor. The abrasion results in particles which can contaminate the processing environment and compromise the quality of the processed semiconductor wafer. In addition to abrasion within the holes, marring of the backside of wafers has also been observed due to movement of the hot wafers while supported on the relatively sharp pins. A typical system utilizes a relatively large paddle on a robotic arm that extends beneath the central section of the wafer between the support pins. Such paddle which is colder than the wafer can also cause adverse effects on a hot wafer.
- a further problem associated with the use of wafer support pins is the permeation of processing gases through spaces that necessarily exist between the pins and the holes in the susceptor. As a result, the processing gases may deposit on the backsides of the wafers. Moreover, the presence of holes in the susceptor results in temperature non-uniformity both in the susceptor and in the wafer being supported thereon.
- the wafer displacement mechanism employs wafer support pins which are suspended from the susceptor.
- the use of freely suspended pins, as opposed to earlier pins, which were connected with both the vertical and rotational drive mechanisms, is intended to reduce pin abrasion within the holes in the susceptor during rotation.
- the Perlov support pins have enlarged frusto-conical heads which fit into complementary depressions countersunk in the upper surface of the susceptor, providing a flat support surface and a sealing means for decreasing the permeation of processing gases to wafer backsides.
- Perlov Notwithstanding the improvements related to diminished rotational abrasion and backside deposition, Perlov still employs a susceptor with a plurality of holes, which are likely, in view of the prior art, to cause temperature non-uniformities. In addition, contaminating particles are still likely to be generated by abrasion when the support pins slide vertically within the susceptor holes. Finally, shrinking of the hot wafer on support pins may still result in backside scratching. Thus, Perlov fails to resolve several of the most important problems inherent in the use of support pins as a means of separating the processed wafer from the susceptor.
- a robotic arm is adapted to include a plurality of gas outlets in the bottom plate of a pick up wand.
- the gas outlets radiate outward from a central portion of the wand in such a pattern as to produce an outward flow of gas across the top surface of the wafer.
- the gas flow creates an area of relatively low pressure between the top surface of the wafer and the bottom surface of the pick up wand, resulting in wafer pick up without physical contact.
- the Bernoulli wand addresses all of the major shortcomings associated with pin-based wafer transfer mechanisms and has some other advantages, it presents a different problem.
- the robot arm and pick up wand assembly are too thick to fit between the unprocessed wafers in a standard wafer supply cassette.
- the gas flow from the wand can stir up particles which settle on the wafer surface. It is also desirable to provide a susceptor and end effector system that avoids problems of known systems but enables a hot wafer to be picked up from below without adverse temperature effects on the wafer, so as to obtain high product throughout.
- a system for facilitating wafer transfer disclosed by the present invention includes a susceptor unit formed by separate sections.
- the sections are vertically and rotatably coupled to move as a single unit in a wafer processing or susceptor etch position.
- a rotatable support such as multi-arm spider, rotates and supports one of the sections, which, in turn, rotates and supports the other section.
- the susceptor sections are also vertically movable relative to each other to cooperate with a wafer handling tool in a wafer load/unload position.
- the system further includes a second support for the susceptor sections, the two supports being vertically and rotatably movable relative to each other.
- the inner and outer sections include a plurality of radially-oriented tabs and recesses which interlock to form the single susceptor unit. Further, the inner and outer sections are fashioned with offsetting marginal flanges to provide vertical support for the inner section within the outer section, thereby creating a substantially flat upper surface for receiving a wafer. In one form of the susceptor unit, the interlocking structure is beneath this upper surface and the interface between the two sections on the upper surface is circular.
- the multi-arm spider located beneath the susceptor unit can rotate into positions to engage recesses of either the inner or the outer susceptor sections.
- the support spider can lift the inner section vertically out of the outer section.
- the spider can raise or lower the entire susceptor unit, as well as rotate it.
- a wafer is moved horizontally into a position in the reaction chamber directly over the susceptor by a robotic arm.
- An end effector is employed that minimizes temperature non-uniformities in the wafer, while at the same time permitting high temperature pick-up of a wafer.
- the wafer is supported by a fork-type end effector on the robot arm having three pins that only engage radially outer portions of the wafer, and thus only minimally effects the temperature of the wafer, and then only at peripheral points.
- the spider engaging only the inner susceptor section, raises the inner section, meeting the wafer cradled within the end effector and lifting it out of the end effector.
- the inner section could be raised a certain distance, and the end effector could then be lowered to place the wafer on the susceptor section.
- the robotic arm can then be withdrawn and the inner susceptor, together with the wafer, lowered into the outer susceptor, which is supported by the outer susceptor support.
- the support spider continues traveling downward leaving the wafer resting on the complete susceptor unit.
- the outer support could be raised to separate the susceptor from the spider.
- the spider rotates to a second position which will engage the outer susceptor.
- the appropriate relative vertical movement of the supports, such as the spider can move the susceptor unit and the wafer to the processing position.
- the susceptor unit may be lowered onto the outer susceptor supports, allowing the spider to be rotated to engage the inner susceptor section again, and the inner section together with the processed wafer are raised.
- the robotic arm once again moves horizontally into the reaction chamber.
- the spider may be once more manipulated to lower the inner section into the outer section, moved further lower, and rotated to a position beneath the outer section.
- the entire unit can then be raised above the process position for an etching treatment. This allows etching of the back side of the susceptor, as well as the top side.
- the present invention addresses each of the major problems identified in the earlier approaches.
- the movement of the inner susceptor section within the outer section produces minimal abrasion because the vertical distance traveled during which the two sections are in physical contact is only equal to the thickness of the susceptor sections.
- support pins are moving in contact with the susceptor body for the entire vertical rise necessary for providing access to the robotic arm.
- there is no significant abrasion in the present invention due to differences in thermal expansion rates between the inner and outer susceptor sections, because both susceptor sections are constructed out of the same material.
- the present invention facilitates automated loading and unloading of semiconductor substrates, while avoiding shortcomings inherent in support pin-mediated transfer mechanisms.
- the forked-type end effector mentioned above is in the form of a thin, flat U- shaped member with three pins or protrusions extending upwardly from the flat portion. Only the pins engage the wafer and hence the remainder of the U-shaped member does not significantly affect the temperature uniformity of the wafer.
- the end effector still has somewhat of a U-shape, although it is more preferably semicircular. That end effector is formed of quartz tubing or other suitable material, and preferably has a tubular handle or stem to be connected to a robotic arm.
- Three small pins or support elements are secured to the upper side of the tubular support.
- One element is located at each end of the support and a third is positioned in the middle of the support at the junction between the curved portion and the stem.
- the elements Preferably, the elements have a stepped upper surface that helps position a wafer on those elements.
- the end effector is in the form of two spaced, generally parallel tubes having wafer support elements on their tips.
- a third wafer support element is supported on a cross piece having its ends joined to the other support tubes.
- the forward portions of the end effector tubes extend beneath a wafer.
- Support elements on the tube tips engage the wafer at an edge remote from the robotic arm supporting the end effector.
- a third support element is employed on the cross piece on the opposite side of the wafer from the other two.
- the tubes are spaced so that they can straddle a centrally located wafer support.
- the tubes are spaced sufficiently close to each other that the pair can extend between wafer transfer mechanisms utilizing three support pins, as mentioned above in connection with the Perlov patent.
- the tubes extend beneath the wafer, they are spaced from the wafer so as to minimize any temperature effect on the wafer. Further, the fact that the tubing has low mass and is preferably made of quartz minimizes any effect of the tubing on the wafer temperature.
- a flat, generally rectangular paddle is employed that will extend beneath a wafer, the paddle being intended for use with a pin support system.
- the paddle is provided with three support elements that are taller than the elements used in the previously described embodiment. With that arrangement, the temperature effect of the paddle on the wafer is minimized because it is spaced from the wafer by the taller elements.
- an end effector is provided that includes a disc positioned close to the wafer; but since the mass extends over most of the wafer surface, the temperature effect on the wafer is relatively uniform. Further, such arrangements have the advantage of producing uniform cooling of the wafer.
- the end effector has a disc-shaped upper portion with a diameter slightly larger than that of a wafer to be lifted.
- Three wafer support elements depend from the lower surface of the disc. Two of these elements are located on the sides of the disc, and a third element is centrally located between the two side ones at the junction between the circular element and a supporting stem for connection to the end effector.
- the side elements are spaced sufficiently to enable the end effector to move horizontally over the upper surface of the wafer with the side support elements straddling the wafer.
- Each support element has an inwardly extending foot or ledge which engages the underside of the wafer.
- a wafer is only supported at three locations on its periphery so as to have a minimum effect on the temperature of the wafer in those locations, and yet the entire wafer is uniformly affected by the disc.
- This end effector may be used with the two-piece susceptor described in this application or with a one-piece susceptor utilizing other arrangements for lifting a wafer above the susceptor, such as the three pin arrangement mentioned above.
- a circular disc is provided with two spaced elongated slots that are open to the forward edge of the disc. This creates a three-pronged paddle with the slots spaced so that the paddle can be moved beneath a wafer supported by three pins. Two of the pins may be received in one of the slots while a third is received in the other slot, and the central portion of the end effector paddle extends between the wafer lifter pins. Two or more wafer support elements are positioned on the periphery of the paddle to support the wafer. Thus, a paddle cooler than the wafer produces a relatively uniform cooling of the wafer.
- the three-pronged paddle can be combined with a disc spaced above the paddle. This forms a pocket which advantageously uniformly cools the wafer during pickup. All of the end effector variations provide the advantage of being able to pick up a wafer at a relatively hot temperature, such as 700°-1000°C, while not causing significant adverse temperature effects on the wafer.
- Figure 1 is a cross-sectional view showing the overall assembled system.
- Figure 2 is an enlarged cross-sectional view of the reaction chamber, described by line 2 of Figure 1, showing the inner and outer sections which comprise the susceptor unit, the support spider, and a wafer supported by the end effector.
- Figure 3 is a top view from 3-3 in Figure 2, showing the wafer transfer and support mechanisms within the reaction chamber.
- Figure 3A is a cross-sectional view on line 3A-3A of Figure 3 showing the detail of a preferred wafer support on the end effector.
- Figure 4A is an exploded perspective view showing the arrangement of the support spider, the fixed support ring, the susceptor sections, the robotic arm end effector, and the wafer.
- Figure 4B is a perspective view of an alternate vertical lift arrangement.
- Figure 4C is an exploded perspective view of an alternate configuration of the interface between the two susceptor sections.
- Figure 5 is a cross-sectional view of the reaction chamber showing the wafer transfer mechanism, wherein the inner susceptor section is shown lifting the wafer off the robotic arm end effector.
- Figure 6 is a cross-sectional view of the reaction chamber showing the wafer transfer mechanism, wherein the inner section has been lowered into the outer section to form a complete susceptor unit upon which the wafer is supported.
- Figure 7 is a cross-sectional view of the reaction chamber showing the wafer transfer mechanism, wherein the susceptor unit has been raised into position for wafer processing.
- Figure 8 is a cross-sectional view, showing the susceptor unit raised into an upper position for cleaning.
- Figure 9 is a cross-sectional view from the side of the lift assembly, showing the lever and vertical stops.
- Figure 10 is a plan view of an alternate form of an end effector.
- Figure 10A is an enlarged side elevational, partially cross-sectional view of the end effector connector of Figure 10.
- Figures 11-16 schematically show plan and side elevational views of six alternate end effectors.
- the overall system of the present invention having a susceptor lift assembly 100 for generating vertical movement in the susceptor unit 150.
- the susceptor unit comprises an inner 152 and outer 154 section.
- the vertical movement generated within the susceptor lift assembly 100 is transferred to a mounting plate 102 which communicates with a drive shaft 130 via a coupling assembly 104 attached to the mounting plate and other components not shown.
- the vertically movable drive shaft also enables rotational movement of the susceptor unit.
- a support spider 120 coupled to the upper end of the drive shaft 130, is capable of selectively engaging either the inner or outer susceptor sections, 152 and 154, respectively.
- the support spider 120 directly provides both vertical support as well as rotational movement for the susceptor unit.
- a robotic arm end effector 200 is employed for loading and unloading wafers from the reaction chamber 50; a wafer 210 is shown resting on the end effector.
- the susceptor unit 150 and support spider 120 are described in greater detail below.
- the overall system incorporates a number of elements, known in the field of semiconductor reactors, which are also illustrated in Figure 1. These include upper and lower walls 10 and 20, respectively, of a quartz chamber, upper and lower radiant heating lamps 30, and a robotic arm access port 40.
- a group of spaced lamps 30 are positioned below the quartz chamber to heat the susceptor unit 150, and a group of such lamps are positioned above the quartz chamber extending perpendicular to the lamps below the chamber.
- the lamps are controlled to maintain the temperature of the susceptor unit substantially the same as the temperature of a substrate mounted on the unit.
- Reactant gases are introduced into the reaction chamber 50, via a gas injector system 90.
- both horizontal (as shown in Figure 1) and axial reaction chambers may be employed in various configurations; the horizontal configuration illustrated is intended only as a typical, schematic representation of such chambers.
- FIG. 2 shows the reaction chamber 50 in greater detail. From this cross- sectional view it can be seen that the susceptor unit 150 comprises two sections, an inner section 152 and an annular outer section 154, which both surrounds and provides vertical support for the inner section. This vertical support consists of offsetting, complementary flanges. The outer section protrudes radially inward along its lower inside margin to provide a supportive flange 156, whereas the inner section protrudes radially outward along its upper circumferential margin to provide a complementary inner section flange 158, which overhangs the outer section flange 156. When the susceptor unit is in its lowest position, as illustrated in Figure 2, the outer susceptor section rests on a plurality of supports 160.
- the drive shaft 130 enters the reaction chamber through an opening 132 in the bottom of the chamber, the walls of the chamber being continuous with a sleeve 134 that surrounds the drive shaft.
- the upper end of the drive shaft articulates with a support spider 120, located under the susceptor unit within the reactor chamber.
- the spider has a plurality of support elements, or arms 122, which radiate outward from a central hub 124.
- the distal ends of the arms 122 terminate in support posts or pegs 128 which fit within recessed seats 126 and 127 in the lower surfaces of the inner or outer susceptor sections, respectively (in this illustration, the spider is shown engaging the inner section 152).
- the articulation between the spider arms 122 and the recessed seats 126 provide a positive coupling means for effecting the rotational movement of the susceptor, and maintaining concentricity of the spider and susceptor during thermal expansions.
- a temperature compensation ring 159 Surrounding the susceptor is a temperature compensation ring 159 supported on pegs 161 extending upwardly from a support ring 140 having legs 141 resting on the bottom wall 20 of the chamber.
- the ring 140 may be more clearly seen in Figure 4, and it can be seen that the susceptor supports 160 are attached to the ring.
- a thermocouple 165 is shown within the ring 159 to sense the temperature of the ring and susceptor in that area.
- Figure 2 also schematically illustrates a robotic arm 188 joined by a connector
- the robotic arm enters the reaction chamber from the access port 40 (located to the left).
- the top view of the reaction chamber shown in Figure 3 illustrates another aspect of the relationship between the wafer 210, robotic arm end effector 200, the inner 152 and outer 154 susceptor sections and the support spider 120.
- the end effector 200 has a forked end that cradles the wafer on a pair of spaced support arms 202, extending beneath the periphery of the wafer and leaving between the arms, an open area which is sufficiently large to accommodate the inner susceptor section 152. Consequently, the inner susceptor section can travel vertically between the open arms 202 of the end effector, thereby picking up an unprocessed wafer and unloading a processed wafer.
- the free ends of the support arms define an open end, while the opposite ends are joined by a closed end portion 201.
- the arms are relatively narrow and extend adjacent the periphery of the wafer 210, as does the closed end 201.
- the rear of the arms 202 and the closed end 201 have a generally semi-circular inner edge, while the free ends of the arms diverge.
- the end effector is relatively thin so that it can conveniently fit within a standard cassette to withdraw or replace a wafer from the cassette and can also fit beneath a wafer when a wafer is to be transferred from the susceptor.
- the end effector is preferably formed with three pins or projections extending above the upper surface of the end effector to engage a wafer.
- a projection 203 is positioned on the outer or free end of each of the support arms, as seen in Figures 3 and 4.
- a third projection 205 is centrally positioned on the closed end of the end effector. All three of the projections are located so that they will engage the lower surface of a wafer close to the outer periphery of a wafer. It is desirable that only three projections engage the hot wafer when it is to be removed from the process chamber. Also, it is desirable that the projections engage the wafer near its outer periphery so that any effect of the end effector and the projections on the wafer is minimized.
- the pins are within 2 inches of the outer periphery of the wafer, more preferably within 1 inch, and most preferably within 1/2 inch of the wafer periphery and being in, or close to, the so-called exclusion zone at the periphery of a wafer, which may not be utilized in connection with an end product or device to be made from the wafer.
- Figure 3A illustrates a preferred form of the projections 203 and 205 where it can be seen a hole is formed through the end effector and a recessed area is formed in the end effector at the upper end of the hole.
- the projection is in the form of a pin having a shank portion 203 a which is fused within the main portion of the hole in the end effector and having a head 203b which fits into the recess.
- the head is formed with a rounded upper surface on a circular radius of about 1/2 inch. However, the head only projects above the adjacent surface of the end effector about .010-.020 of an inch.
- the end effector itself has a thickness of about .1 of an inch.
- the rounded upper surface of the pins minimizes the risk of scratching or otherwise marring the surface of a wafer, while it is engaging the wafer. Further, the upper surface is made very smooth to again minimize the risk of scratching the wafer.
- the end effector is preferably made of quartz or other suitable inert material capable of withstanding the high temperatures encountered in the process chamber. Quartz pins can be flame polished for smoothness. Referring now to Figures 10 and 10A, there is illustrated another form of a forked end effector or paddle 300 and further detail of the connector 190 joining the end effector to a robotic arm 188.
- the paddle has a generally forked or U-shape with a pair of spaced support arms 302 defining an open end and being joined by a closed end portion 304.
- Each of the arms has a pin 303 which extends above the top surface of the paddle, and a third pin 305 is at the closed end of the paddle.
- the tips of the forked arms are beveled to a thinner edge to facilitate insertion of the paddle beneath a wafer in a cassette.
- the inner edge of the paddle 300 has a semi-circular shape with the forward edges diverging slightly as can be seen from the superimposed wafer 260, the paddle only extends beneath the outer portion of the wafer, and the pins engage the wafer adjacent the outer periphery of the wafer.
- FIG. 10 shows the connector 190 attached to a rearwardly extending portion of the paddle 300.
- Figure 10A shows a side elevational, partially sectionalized view of that connector. It includes a space 190a for receiving the rearwardly extending portion of the paddle.
- a pair of relatively flat spring elements 191 are positioned adjacent the upper and lower walls adjacent the space 190a to engage the rearwardly extending portion of the paddle in a resilient manner.
- the bracket 193 and the connector 196 may be made of metal, and to help keep them cool, a coolant is conducted through one branch of the robot arm 188 through the bracket 193 and then returned in a second branch of the robot arm. Some cooling effect is also transferred to the connector 190 mounted on the paddle inasmuch as the connector and the bracket are in abutting relation. This also facilitates the hot-pickup of the wafer.
- the relationship between the inner and outer susceptor sections is also illustrated in Figure 3.
- the inner section 152 is shown surrounded by the annular outer section 154.
- Both the inner and outer sections have a plurality of circumferentially spaced, complementary, offsetting segments or tabs 162 and recesses 164, such that the tabs on the inner section fit snugly within the recesses in the outer section and visa versa. Consequently, the two susceptor sections fit together to form a substantially flat susceptor unit.
- the interlocking tabs and recesses enable positive transfer of rotational torque, allowing the susceptor sections to rotate as a single unit.
- the outer susceptor supports 160 extend inwardly from the support ring 140.
- the supports 160 and 161 are shown in solid lines for ease of viewing, although they are hidden from above by the susceptor and the ring 159.
- the support spider 120 is below the inner section 152, it is illustrated in solid lines in one position, and broken lines in its second position to facilitate understanding.
- the spider comprises a central hub 124 and a plurality of support elements, or arms 122.
- rotation of the spider in this case by 60 degrees, will cause the arms to selectively engage either the inner susceptor tabs 162 or the outer susceptor tabs 164.
- the exploded view in Figure 4A is useful in illustrating the vertical relationships among the major components of the wafer transfer mechanism.
- the wafer 210 is supported by the robotic arm end effector 200, along the margin of the wafer by the arms 202 of the end effector.
- the inner susceptor section 152 tabs 162 may be seen extending radially outward from its outer margin. Between each tab 162 is a recess 166. On the lower surface of the inner section is a centrally disposed recess 125 which is adapted to accommodate the tip of a thermocouple 129 that extends through the shaft 130 and hub 124 of the support spider 120. The lower surface of each tab has a recessed seat 126 for receiving the support peg 128 on the distal end of each spider arm 122.
- the annular outer susceptor section 154 tabs 164 may be seen extending radially inward from its inner margin into a central hole 169. Between each tab 164 is a recess 168.
- the tabs and recesses on the inner susceptor are complementary to those on the outer susceptor, so that an inner section tab 162 fits within an outer section recess 168 and an outer section tab 164 fits within an inner section recess 166, permitting the two susceptor sections to fit together.
- the inner section is vertically supported within the outer section by the offsetting flanges, 156 and 158.
- the overhanging flange 158 on the inner section rests on the under-extending flange 156 on the outer section.
- the flanges extend both radially and circumferentially such that there is no light path through the susceptor.
- the combined thickness of the flanges is equal to the thickness of the susceptor sections, thus, giving the entire susceptor the constant thickness in the area in which a wafer is placed.
- the interface between the inner and outer sections is in the shape of the periphery of the inner section 152, that is, extending circumferentially and radially.
- An arrangement to shorten the length of the interface is illustrated in Figure 4C wherein an inner section 252 is shown as having a circular upper portion which fits within a corresponding circular recess 255 in an outer section 254.
- the diameter of the inner section 252 is the same as that for the section 152 in Figure 4A, but the recesses 166 of section 152 are not formed in the upper portion of the alternative inner section 252.
- Recesses 266 are, however, formed in the lower portion of the inner section 252.
- the upper portions of section 252 that are above the recesses 266 are, in effect, flanges that fit onto corresponding flanges on the section
- section 254 includes three inwardly extending tabs or segments 264 that fit within the corresponding recesses 266 of the inner section 252.
- segments 226 of the inner portion fit within the recesses 268 of the outer section.
- the advantage of this arrangement is that the wafer faces a circular line between the two susceptors sections rather than the longer radially in and out line of the arrangement of Figure 4A, and the gap can be made smaller.
- the support spider 120 may be more clearly seen positioned on the end of the drive shaft 130.
- the thermocouple 129 extends through the center of the hub 124.
- the plurality of support elements, or arms 122 extend radially outward from the hub, each arm terminating in a support peg 128.
- the support pegs are adapted to fit within the recessed seats 126 and 127, in the inner and outer susceptor sections, respectively. Operation The operation of the system can be more clearly understood in reference to Figures 5-8.
- the robotic arm 190 enters the chamber via the access port 40 with the end effector 200 supporting the unprocessed wafer or substrate 210.
- the end effector and wafer are positioned directly above the susceptor unit 150.
- the inner susceptor section 152 is raised by the support spider 120.
- the inner susceptor section passes vertically between the open arms of the end effector, lifting the wafer 210 from the end effector as seen in Figure 5.
- This highest position of the inner susceptor section 152 may be referred to as a "load/unload-etch" position.
- the robotic arm is withdrawn from the reaction chamber.
- the inner section 152 and the wafer are then lowered until the inner section comes to rest within the outer section 154; offsetting flanges on the inner and outer sections, respectively, cooperate to support the inner section within the outer section.
- the susceptor unit formed when the two susceptor sections come together is supported by the outer susceptor supports 160, attached to the support ring 140. As seen in Figure 6, the susceptor unit is slightly below the wafer processing position.
- the support spider must rotate to engage the outer susceptor section so it can raise the entire susceptor unit 150 together with the wafer into an elevated processing position. Specifically, once the spider 120 has traveled down to its lowest, "disengage/rotate” position, the support pegs 128 on the ends of the spider arms completely disengage from the recessed seats in the lower surface of the inner susceptor section. Then the spider 120 is free to rotate to a second position wherein the support pegs 128 are now situated directly below recessed seats in the lower surface of the outer susceptor section. As the spider is raised, it engages the outer section as shown in Figure 6 and causes the susceptor unit 150 to rise.
- the support spider stops traveling upward.
- the support spider causes the susceptor unit and wafer to rotate, thus facilitating more uniform deposition.
- the spider 120 is lowered. The susceptor unit and wafer travel downward until the outer susceptor section 154 comes to rest on the outer susceptor supports 160. Once again, the spider 120 continues lowering to the "disengage/rotate" position disengages from the susceptor unit.
- the spider then rotates back to its first position, in which the support pegs on the spider arms are again aligned directly below the recessed seats on the inner susceptor section 152. Now, the spider rises, lifting the inner susceptor, together with the wafer, out of the outer susceptor section, which remains resting on the outer susceptor supports.
- the inner section and wafer are raised to the highest, load/unload- etch position, which is high enough to permit the robotic arm end effector to enter the reaction chamber between the elevated inner susceptor section and the lower outer susceptor section; the arms of the end effector straddle the spider. Consequently, when the spider lowers, the inner susceptor section travels down between the forked arms of the end effector. As the inner section continues downward, the wafer, which substantially overhangs the inner section, comes to rest on the forked arms of the end effector. The robotic arm is then withdrawn, together with the processed wafer.
- cleaning of the susceptor unit by chemical etching can be accomplished between processing cycles at the highest, load/unload-etch vertical stop illustrated in Figure 8.
- Gases known in the art, such as hydrogen chloride, may be used for etching.
- the raised position facilitates cleaning of both the upper and lower surfaces of the susceptor unit.
- the lift assembly 100 illustrated in Figures 1 and 9 includes a lever 108 pivotally mounted on a pin 107.
- An actuator 106 attached to one end of the lever is operable for pivoting the lever 108, which in turn moves up and down a member 109, which is connected to the mounting plate 102.
- the middle, processing position stop 1 12 (shown in two positions) can be engaged or disengaged by operation of a pneumatic actuator 1 13.
- a pneumatic actuator 1 13 When the stop is withdrawn to the solid line position shown by 1 12a, the lever does not stop at this middle position, but travels freely between the upper and lower stops.
- the stop 112 moves to the phantom position shown by 1 12b, the lever is stopped in the middle position 108b.
- the upper, load/unload-etch position 108c is regulable by adjustment of stop 114.
- the elevator mechanism In addition to the elevator mechanism
- the vertical movement to transfer the wafer between the end effector and the susceptor can be provided by moving the end effector vertically, rather than the susceptor section.
- the end effector when a susceptor section has been elevated to receive a wafer, the end effector could be lowered to transfer the wafer to the susceptor section. Similarly, when a wafer is to be unloaded from the susceptor, and the end effector is inserted beneath the wafer, the end effector could be raised to lift the wafer from the susceptor section.
- the relative vertical movement required to enable the spider to rotate relative to the susceptor unit could be provided by moving the outer supports 160 vertically rather than the spider. That is, once the susceptor is lowered to the disengage/rotate position comparable to that of Figure 6, but with the spider still engaging the inner sections, the supports 160 could be elevated slightly to separate the susceptor unit from the spider and allow the spider rotate to the position where it can be moved to engage the inner section.
- a separate actuator could engage the outer section directly rather than through the supports 160.
- the spider 120 can remain in contact with the outer section at all times, and a separate actuator spider 220, concentric and rotatable with the spider 120, can move vertically relative to the spider 120 to raise and lower the inner section to load and unload the wafer.
- a separate actuator spider 220 concentric and rotatable with the spider 120, can move vertically relative to the spider 120 to raise and lower the inner section to load and unload the wafer.
- wafers can be unloaded at an elevated temperature, in the range of about 700-1000°C. This allows increased throughput through the process chamber with an end effector that contacts the underside of a wafer.
- hot pickup performance was only obtained with the above-mentioned Bernoulli wand system in which a wafer is lifted from above by gas flow creating a reduced pressure and a lifting effect substantially without contact of the wafer.
- the wafer is elevated by the relatively large inner section of the susceptor, and then transferred to a paddle which engages the outer periphery of the susceptor, while the susceptor inner section is lowered from the wafer. Since the central section of the susceptor is at the same temperature as the wafer and the inner section of the susceptor is relatively large with respect to the area of the wafer, there is no tendency for the wafer to move with respect to the inner section while the wafer is being elevated. After the inner section is withdrawn and the wafer is then being supported by the three pins on the paddle that engage the wafer adjacent its outer periphery, there is nothing contacting the central portion of the wafer that might mar the wafer as it flexes and cools.
- the system has been effective for transferring hot wafers about 900°C, thus increasing the productivity of the system.
- the inner and outer sections of the susceptor fit relatively closely at the upper surface of the susceptor. Nevertheless, at the mating line between the two sections there is a slight line space where there is no contact between the susceptor and the substrate. To make sure that there is no temperature discontinuity in that area that could produce crystallographic slip or any variation in deposition thickness along that line, the temperature of the susceptor and the temperature of the wafer are kept the same during the deposition process.
- FIG. 11a and l ib illustrate an end effector having a substantially semicircular or U-shaped forward portion 402 supported in cantilever fashion by a stem 404 centrally connected to the forward portion and also connected to a bracket 406 adapted to be connected to a robotic arm in some suitable fashion.
- the forward portion 402 as well as the stem 404 are preferably formed of thin tubing made of quartz or other suitable material that can withstand high temperatures and does not contaminate the wafer 260 supported by the end effector.
- a support element 403 is positioned on the upper surface of the tips of the arc-shaped portion 402, and a third element 403 is positioned on the upper surface of the portion 402 at the intersection with the stem 404.
- Each support element 403 has a notch or step 403a on its radially inner side located and dimensioned to extend beneath to engage and support a wafer. Further, the upper portions of the elements 403 guide the positioning of the wafer on the end effector.
- the end effector 402 only contacts a wafer at three peripheral portions, and the shape of the forward portion 402 as well as its spacing from the wafer minimizes any temperature effect on a wafer.
- the surfaces on which the wafer rests are slightly sloped downwardly in a radially inwardly direction, as indicated in Figure l ie. The slope is exaggerated in Figure 1 lc for purposes of illustration.
- the end effector 402 can be used with the two piece susceptor described above and with a three pin wafer elevating system as described in the above-identified Perlov patent, which is incorporated herein by reference.
- Figures 12a and 12b illustrate another end effector configuration preferably utilizing thin quartz tubing.
- a pair of tubes 502 extend in substantially parallel relation, with the rear ends being joined to a component 506 adapted to be connected to a robotic arm.
- the arms 502 are also joined by a cross piece 504 that provides support to the arms 502, allowing the forward portions 502a of those arms to extend in cantilever fashion.
- a support pin 503 is positioned on the free end of each arm portion 502a.
- a similar support pin 503 is centrally positioned on the cross piece 504.
- the elements 503 are analogous to the elements 403 in Figure
- a desirable three point support arrangement is provided, with two pins located at the forward edge of the wafer and the third centrally positioned on the cross piece.
- the spacing of the forward portion 502a is such that those arms can straddle a central support and can fit between three spaced supports, such as that provided by the spider support described above.
- the two-pronged paddle will also fit between three lifter pins of the type described in the above referenced Perlov patent.
- Such pins are schematically shown at 510 in Figure 12a to illustrate the relationship with the paddle. While the prongs 502a extend beneath the wafer, they do not have a significant thermal effect on the wafer because they are spaced from the wafer and because they are formed of thin quartz tubing which is substantially transparent to most radiation.
- FIGS 13a and 13b discloses a paddle type end effector constructed for use with a three pin type system for elevating a wafer above a susceptor.
- the paddle includes a generally rectangular plate 602 having its rear end supported by a bracket
- Two wafer support elements 603 are positioned on the forward corners of the plate 602, and a third is centrally positioned on the plate to cooperate with the rear edge of a wafer. As may be seen from Figures 13a and 13b, the three pins are located so as to provide three point support for a wafer 260.
- the pins 603 are taller than the pins used in the arrangements of Figures 11 and
- the pins position a wafer at least about 2 millimeters above the paddle and more preferably at least about 5 millimeters.
- the wafer is only engaged at three points on its periphery, and the bulk of the paddle is spaced beneath the wafer so that the paddle has minimal non- uniformity thermal effect on the wafer, even though the paddle is only located in the central portion.
- the paddle is sized to fit between lifter pins 610.
- FIGS 14 and 15 utilize an alternate approach from the end effectors of
- Figures 1 1-13 in that instead of employing end effectors that have a minimum of thermal effect on the wafer so as to maintain temperature uniformity, the arrangements of Figures 14 and 15 provide greater thermal effect. However the thermal effect is relatively uniform such that adverse temperature non-uniformities are minimized.
- FIG. 14a and 14b illustrates a large generally circular paddle forward portion 702 having a diameter slightly larger than the diameter of the wafer 260 to be supported on it.
- the circular portion is supported in cantilever fashion by a generally rectangular stem 704 connected to a bracket 706 to be joined to a robotic arm.
- the paddle includes a pair of spaced elongated slots 708 which create a three pronged paddle having a central section 702a between the slots 708, and a pair of side prongs 702b.
- the slots 708 are located so that three schematically indicated lifter pins 710 of a wafer elevating system, of the type disclosed in the above-mentioned Perlov patent, will fit within the slots with the pins properly oriented.
- a pair of curved wafer support pins or elements 703 are located on the outer periphery of the two side prongs 702b.
- the support elements 703 include a slightly sloped step 703a on which the wafer 260 rests while the upper portions of the elements 703b laterally position the wafer.
- three pins may be located in a manner similar to that shown for the arrangement in Figure 11. That is, the pins would be small as shown in Figure 1 1 and would be spaced to provide the three point support.
- the paddle may be made of quartz, silicon carbide or other suitable material able to withstand high temperatures. Since the paddle, even with the slots 708, extends over more than about 80% of the area of the wafer 260, the paddle has a relatively uniform thermal effect on the wafer.
- Figures 15a, 15b and 15c show an end effector comprising a forward circular disc 802 having a diameter slightly larger than a wafer 260 to be lifted.
- the disc 802 is supported in cantilever fashion by a generally rectangularly shaped stem 804 joined to the rear of the disc.
- a pair of support elements 803 are depending from the lower surface on the lateral sides of the paddle 802.
- a third support element 803 is centrally located on the rear edge of the disc 802.
- Each element 803 includes a vertical portion 803a and a radially inwardly extending ledge or foot 803b, which form support for a peripheral portion of the wafer 260. as seen in Figure 15b.
- the wafer is not shown in Figures 15a and 15c.
- the end effector of Figure 15 is useful with a susceptor wafer elevation system of the type disclosed in the present application or of the three lifter pin type referred to above.
- the disc 802 is intended to have a thermal effect on the wafer; however, since it extends over the entire upper surface of the wafer, the thermal effect is substantially uniform.
- the inwardly extending feet 803b that engage the wafer provide only three point support with minimal thermal effect.
- a wafer 260 would be carried as shown in Figure 15b. To transfer the wafer, the paddle would be moved over a wafer lifter, and slight relative vertical movement would transfer the wafer to the lifter. The paddle is then withdrawn. The reverse procedure is employed to transfer from the lifter to the paddle.
- Figures 14 and 15 could combine the concepts of Figures 14 and 15 and construct an end effector which receives the wafer in a pocket.
- This is schematically shown in Figure 16 with a lower slotted paddle 702, and an upper disc 802 joined by stepped wafer support elements 903. This structure will cool the wafer substantially uniformly from both sides during pickup with minimal warping.
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- Engineering & Computer Science (AREA)
- Physics & Mathematics (AREA)
- Condensed Matter Physics & Semiconductors (AREA)
- General Physics & Mathematics (AREA)
- Manufacturing & Machinery (AREA)
- Computer Hardware Design (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Power Engineering (AREA)
- Robotics (AREA)
- Container, Conveyance, Adherence, Positioning, Of Wafer (AREA)
Abstract
Description
Claims
Applications Claiming Priority (5)
Application Number | Priority Date | Filing Date | Title |
---|---|---|---|
US08/976,537 US6068441A (en) | 1997-11-21 | 1997-11-21 | Substrate transfer system for semiconductor processing equipment |
US976537 | 1997-11-21 | ||
US193991 | 1998-11-17 | ||
US09/193,991 US6293749B1 (en) | 1997-11-21 | 1998-11-17 | Substrate transfer system for semiconductor processing equipment |
PCT/US1998/024951 WO1999027577A1 (en) | 1997-11-21 | 1998-11-20 | Substrate transfer system for semiconductor processing equipment |
Publications (2)
Publication Number | Publication Date |
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EP1038314A1 true EP1038314A1 (en) | 2000-09-27 |
EP1038314A4 EP1038314A4 (en) | 2009-01-21 |
Family
ID=26889587
Family Applications (1)
Application Number | Title | Priority Date | Filing Date |
---|---|---|---|
EP98960377A Withdrawn EP1038314A4 (en) | 1997-11-21 | 1998-11-20 | Substrate transfer system for semiconductor processing equipment |
Country Status (5)
Country | Link |
---|---|
US (1) | US6293749B1 (en) |
EP (1) | EP1038314A4 (en) |
JP (1) | JP4362224B2 (en) |
KR (1) | KR100603970B1 (en) |
WO (1) | WO1999027577A1 (en) |
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Also Published As
Publication number | Publication date |
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JP4362224B2 (en) | 2009-11-11 |
KR20010032348A (en) | 2001-04-16 |
WO1999027577A1 (en) | 1999-06-03 |
JP2001524751A (en) | 2001-12-04 |
US6293749B1 (en) | 2001-09-25 |
EP1038314A4 (en) | 2009-01-21 |
KR100603970B1 (en) | 2006-07-25 |
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